Advancing from MOFs and COFs to Functional Macroscopic Porous Constructs

S Seyyed Alireza Hashemi (Nanomaterials and Polymer Nanocomposites Laboratory School of Engineering University of British Columbia Kelowna BC V1V 1V7 Canada) A Ahmadreza Ghaffarkhah (Nanomaterials and Polymer Nanocomposites Laboratory School of Engineering University of British Columbia Kelowna BC V1V 1V7 Canada) A Ali Akbar Isari (Nanomaterials and Polymer Nanocomposites Laboratory School of Engineering University of British Columbia Kelowna BC V1V 1V7 Canada) M Mahyar Panahi‐Sarmad (Department of Wood Science Faculty of Forestry The University of British Columbia 2036 Main Mall Vancouver BC V6T 1Z4 Canada) F Feng Jiang (State Key Laboratory of Integrated Optoelectronics, JLU Region, College of Electronic Science and Engineering, Jilin University, 2699 Qianjin Street, Changchun 130012, P. R. China) O Orlando J. Rojas S Stefan Wuttke (Academic Centre for Materials and Nanotechnology, AGH University of Krakow, al. Adama Mickiewicza 30, Kraków 30-059, Poland) M Mircea Dincă (Frick Chemistry Laboratory) M Mohammad Arjmand (Nanomaterials and Polymer Nanocomposites Laboratory School of Engineering University of British Columbia Kelowna BC V1V 1V7 Canada)

Abstract

Abstract Metal–organic frameworks (MOFs) and covalent‐organic frameworks (COFs) are the highly porous rising stars of reticular chemistry. However, most face challenges such as poor macroscopic structuring capability, inadequate mechanical robustness, and inaccessible porosities for target reactants, which hinder their practical applications. This review explores various strategies to assemble MOFs and COFs into macroscopic 3D‐structured multi‐scale porous structures, such as aerogels, foams, and sponges. The methods discussed include direct mixing, self‐shaping, in situ growth, template‐assisted approaches, and 3D printing. These strategies enable macroscopic MOF or COF porous structures to achieve excellent mechanical strength and tunable porosity from the molecular level and micro‐scale up to the macroscopic level. This structural tunability allows the MOF or COF porous structures to outperform their neat powders by making their micro‐ and meso‐porosities more accessible to target reactants. Such improvements pave the way for the functionality of MOF or COF species at larger scales, addressing urgent societal needs, including environmental remediation, CO 2 capturing, value‐added catalytic reactions, water harvesting, electromagnetic (EM) shielding, and beyond.

Article Details

Volume / Issue Vol. 37, Issue 52
Published December 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

S

Seyyed Alireza Hashemi

Nanomaterials and Polymer Nanocomposites Laboratory School of Engineering University of British Columbia Kelowna BC V1V 1V7 Canada

A

Ahmadreza Ghaffarkhah

Nanomaterials and Polymer Nanocomposites Laboratory School of Engineering University of British Columbia Kelowna BC V1V 1V7 Canada

A

Ali Akbar Isari

Nanomaterials and Polymer Nanocomposites Laboratory School of Engineering University of British Columbia Kelowna BC V1V 1V7 Canada

M

Mahyar Panahi‐Sarmad

Department of Wood Science Faculty of Forestry The University of British Columbia 2036 Main Mall Vancouver BC V6T 1Z4 Canada

F

Feng Jiang

State Key Laboratory of Integrated Optoelectronics, JLU Region, College of Electronic Science and Engineering, Jilin University, 2699 Qianjin Street, Changchun 130012, P. R. China

O

Orlando J. Rojas

S

Stefan Wuttke

Academic Centre for Materials and Nanotechnology, AGH University of Krakow, al. Adama Mickiewicza 30, Kraków 30-059, Poland

M

Mircea Dincă

Frick Chemistry Laboratory

M

Mohammad Arjmand

Nanomaterials and Polymer Nanocomposites Laboratory School of Engineering University of British Columbia Kelowna BC V1V 1V7 Canada